TY - GEN
T1 - Multi-Spacecraft adaptive tracking control with collision avoidance based on fully actuated system approach
AU - Zhang, Xiaoxiang
AU - Geng, Yunhai
AU - Wu, Baolin
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024
Y1 - 2024
N2 - In this paper, an adaptive tracking control problem of a constrained multi-spacecraft system in observation mission for a rotating target is investigated. Based on the integrated spacecraft attitude-orbit kinematic described on Lie group SE(3) and a positive definite configuration error function, a second-order fully actuated system model for error configuration is derived. Considering collision avoidance problem, a collision avoidance scheme based on the collision detection algebraic condition is established, which considers the interaction of relative attitude and geometric shapes of two spacecraft. In view of the influence of external disturbance, an adaptive controller based on the fully actuated system theory is further designed. According to Lyapunov stability theory, it is proved that the resulting closed-loop system is ultimately uniformly bounded. The simulation results prove the effectiveness of the proposed control strategy.
AB - In this paper, an adaptive tracking control problem of a constrained multi-spacecraft system in observation mission for a rotating target is investigated. Based on the integrated spacecraft attitude-orbit kinematic described on Lie group SE(3) and a positive definite configuration error function, a second-order fully actuated system model for error configuration is derived. Considering collision avoidance problem, a collision avoidance scheme based on the collision detection algebraic condition is established, which considers the interaction of relative attitude and geometric shapes of two spacecraft. In view of the influence of external disturbance, an adaptive controller based on the fully actuated system theory is further designed. According to Lyapunov stability theory, it is proved that the resulting closed-loop system is ultimately uniformly bounded. The simulation results prove the effectiveness of the proposed control strategy.
KW - Collision avoidance
KW - Fully actuated system approach
KW - Lie group SE(3)
KW - Spacecraft pose tracking control
UR - https://www.scopus.com/pages/publications/85200602915
U2 - 10.1109/FASTA61401.2024.10595217
DO - 10.1109/FASTA61401.2024.10595217
M3 - 会议稿件
AN - SCOPUS:85200602915
T3 - Proceedings of the 3rd Conference on Fully Actuated System Theory and Applications, FASTA 2024
SP - 1406
EP - 1411
BT - Proceedings of the 3rd Conference on Fully Actuated System Theory and Applications, FASTA 2024
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 3rd Conference on Fully Actuated System Theory and Applications, FASTA 2024
Y2 - 10 May 2024 through 12 May 2024
ER -